Reducing Social Network Dimensions Using Matrix Factorization Methods

Václav Snåšel, Zdeněk J. Horák, Jana Kočíbová, Ajith Abraham · 2009

Since the availability of social networks data and the range of these data have significantly grown in recent years, new aspects have to be considered. In this paper we address computational complexity of social networks analysis and clarity of their visualization. Our approach uses combination of Formal Concept Analysis and well-known matrix factorization methods. The goal is to reduce the dimension of social network data and to measure the amount of information which is lost during the reduction.

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